Effects of fixed-dose isosorbide dinitrate/hydralazine on diastolic function and exercise capacity in

Richard M Wilson1, Deepa S De Silva, Kaori Sato

  • 1Whitaker Cardiovascular Institute, Boston University School of Medicine, Evans Department of Medicine and Cardiovascular Section, 715 Albany Street, Boston, MA 02118, USA.

Insights

Fixed-dose isosorbide dinitrate/hydralazine (HISDN) improved hypertension and diastolic function in a mouse model of heart failure. However, HISDN did not reverse left ventricular hypertrophy or reduce pulmonary congestion.

Area of Science:

  • Cardiovascular Research
  • Pharmacology
  • Heart Failure Pathophysiology

Background:

  • Hypertension is a major cause of diastolic heart failure and left ventricular (LV) hypertrophy.
  • The efficacy of fixed-dose isosorbide dinitrate/hydralazine (HISDN) in hypertension-induced diastolic heart failure and its impact on maladaptive remodeling remain unclear.

Purpose of the Study:

  • To investigate the effects of chronic HISDN on LV hypertrophy and myocardial remodeling in a mouse model of hypertension-induced diastolic heart failure.

Main Methods:

  • FVB mice underwent aldosterone infusion and uninephrectomy with salt water to induce hypertension and heart failure.
  • Mice were randomized to receive either regular chow or HISDN-containing chow for 4 weeks.
  • Blood pressure, LV mass, cardiac dimensions, diastolic function (mitral Doppler E/A ratio), exercise capacity, and plasma soluble vascular cell adhesion molecule 1 were assessed.

Main Results:

  • Aldosterone infusion increased blood pressure and induced LV hypertrophy.
  • HISDN attenuated the increase in systolic blood pressure but did not cause LV hypertrophy regression.
  • Mitral Doppler E/A ratio, exercise capacity, and plasma soluble vascular cell adhesion molecule 1 levels were improved with HISDN treatment.

Conclusions:

  • Fixed-dose HISDN effectively improved hypertension, diastolic function, and exercise capacity in this model.
  • HISDN did not reduce established LV hypertrophy, cardiac fibrosis, or pulmonary congestion.
  • Functional improvements may be linked to extracardiac vascular effects rather than direct cardiac remodeling reversal.

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